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Digital Twin for Networking: A Data-driven Performance Modeling Perspective

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arxiv 2206.00310 v1 pith:U3H6SJ4D submitted 2022-06-01 cs.NI

classification cs.NI
keywords performancenetworkapplicationsdatadata-drivenevaluationdigitalmethods
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Emerging technologies and applications make the network unprecedentedly complex and heterogeneous, leading physical network practices to be costly and risky. The digital twin network (DTN) can ease these burdens by virtually enabling users to understand how performance changes accordingly with modifications. For this "What-if" performance evaluation, conventional simulation and analytical approaches are inefficient, inaccurate, and inflexible, and we argue that data-driven methods are most promising. In this article, we identify three requirements (fidelity, efficiency, and flexibility) for performance evaluation. Then we present a comparison of selected data-driven methods and investigate their potential trends in data, models, and applications. Although extensive applications have been enabled, there are still significant conflicts between models' capacities to handle diversified inputs and limited data collected from the production network. We further illustrate the opportunities for data collection, model construction, and application prospects. This survey aims to provide a reference for performance evaluation while also facilitating future DTN research.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Mathematical Modeling for Network Upgrades in Internet Service Provider Infrastructure

    cs.NI 2025-02 reject novelty 1.0 of 10

    A restatement of standard queueing theory for when a hypothetical ISP network becomes overloaded, with no real data or code.

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